Cell patterning technology faces critical limitations in dynamic control, biocompatibility, and structural stability for reconstructing native tissues. Here, we establish an acoustic-hydrogel integration strategy that overcomes these challenges through synergistic physical-biological programming. Experimental validation using particle/red blood cells-patterned hydrogels demonstrated exceptional structural stability under physiological conditions. Fiber-optic spectroscopic sensing technology enabled long-term monitoring of the ex vivo deoxygenation process in patterned red blood cells. The "pattern-and-lock" paradigm fundamentally resolves the stability-biocompatibility trade-off by decoupling acoustic manipulation from hydrogel curing. Its translational significance spans precision transfusion platforms for red blood cells functionality screening and label-free microtissue models capturing dynamic metabolic processes. By converging acoustic programmability with hydrogel biofunctionality, this work provides a scalable biomanufacturing platform validated for next-generation tissue models and clinical diagnostics.
A pattern and lock strategy integrating acoustic patterning and hydrogel crosslinking for stable cell architectures.
一种结合声学图案化和水凝胶交联的图案锁定策略,用于构建稳定的细胞结构
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作者:Sun Chenghao, Xu Boxiao, Huang Liang, Zhang Wenzhen
| 期刊: | Scientific Reports | 影响因子: | 3.900 |
| 时间: | 2025 | 起止号: | 2025 Aug 22; 15(1):30885 |
| doi: | 10.1038/s41598-025-16296-8 | 研究方向: | 细胞生物学 |
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